Research on the Application of Behavioral Image Feature Capture in Basketball Game Video

Yan Zhang Yan Zhang, Wei Wei Yan Zhang
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Abstract

In order to realize intelligent image recognition of foul behavior in basketball games, this paper designs a feature capture method of video foul behavior based on improved bilateral filtering algorithm. Adaptive bilateral filtering is used to denoise the video image, and the optical flow feature and HOG feature of the behavior in the denoised image are obtained by image combination feature extraction method, which is fused to a combined eigenvector. The combined features were taken as the target recognition samples, and the multi-back propagation neural network was used to identify the foul behavior features. The particle filter was used to capture the video features and identify the location of the video behavior features. The experimental results show that this method can accurately capture the changes of video behavior characteristics, and has applicable performance in the identification of foul behavior in basketball matches.  
篮球比赛视频中行为图像特征捕捉的应用研究
为了实现篮球比赛中犯规行为的智能图像识别,本文设计了一种基于改进的双边滤波算法的视频犯规行为特征捕获方法。采用自适应双边滤波对视频图像进行去噪处理,通过图像组合特征提取方法得到去噪图像中行为的光流特征和HOG特征,并将其融合为组合特征向量。将组合特征作为目标识别样本,使用多回传播神经网络识别犯规行为特征。粒子滤波器用于捕捉视频特征和识别视频行为特征的位置。实验结果表明,该方法能准确捕捉视频行为特征的变化,在篮球比赛中的犯规行为识别中具有良好的应用效果。
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